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Growth Mechanisms of Inductively- Coupled Plasma Torch Synthesized Silicon Nanowires and their associated photoluminescence properties

Academic Article
Publication Date:
2016
abstract:
Ultra-thin Silicon Nanowires (SiNWs) were produced by means of an industrial inductively-coupled plasma (ICP) based process. Two families of SiNWs have been identified, namely long SiNWs (up to 2-3 micron in length) and shorter ones (~100 nm). SiNWs were found to consist of a Si core (with diameter as thin as 2 nm) and a silica shell, of which the thickness varies from 5 to 20 nm. By combining advanced transmission electron microscopy (TEM) techniques, we demonstrate that the growth of the long SiNWs occurred via the Oxide Assisted Growth (OAG) mechanism, while the Vapor Liquid Solid (VLS) mechanism is responsible for the growth of shorter ones. Energy filtered TEM analyses revealed, in some cases, the existence of chapelet like Si nanocrystals embedded in an otherwise silica nanowire. Such nanostructures are believed to result from the exposure of some OAG SiNWs to high temperatures prevailing inside the reactor. Finally, the intense photoluminescence (PL) of these ICP-grown SiNWs in the 620-950 nm spectral range is a clear indication of the occurrence of quantum confinement. Such a PL emission is in accordance with the TEM results which revealed that the size of nanostructures are indeed below the exciton Bohr radius of silicon.
Iris type:
01.01 Articolo in rivista
Keywords:
Silicon nanowires; Transmission Electron Microscopy; Photoluminescence
List of contributors:
Boninelli, SIMONA MARIA CRISTINA
Authors of the University:
BONINELLI SIMONA MARIA CRISTINA
Handle:
https://iris.cnr.it/handle/20.500.14243/394819
Published in:
SCIENTIFIC REPORTS
Journal
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URL

https://www.nature.com/articles/srep37598
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